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Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder

[Image: see text] The outstanding diversity of Zr-based frameworks is inherently linked to the variable coordination geometry of Zr-oxo clusters and the conformational flexibility of the linker, both of which allow for different framework topologies based on the same linker–cluster combination. In a...

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Autores principales: Koschnick, Charlotte, Terban, Maxwell W., Frison, Ruggero, Etter, Martin, Böhm, Felix A., Proserpio, Davide M., Krause, Simon, Dinnebier, Robert E., Canossa, Stefano, Lotsch, Bettina V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10176567/
https://www.ncbi.nlm.nih.gov/pubmed/37125876
http://dx.doi.org/10.1021/jacs.2c13731
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author Koschnick, Charlotte
Terban, Maxwell W.
Frison, Ruggero
Etter, Martin
Böhm, Felix A.
Proserpio, Davide M.
Krause, Simon
Dinnebier, Robert E.
Canossa, Stefano
Lotsch, Bettina V.
author_facet Koschnick, Charlotte
Terban, Maxwell W.
Frison, Ruggero
Etter, Martin
Böhm, Felix A.
Proserpio, Davide M.
Krause, Simon
Dinnebier, Robert E.
Canossa, Stefano
Lotsch, Bettina V.
author_sort Koschnick, Charlotte
collection PubMed
description [Image: see text] The outstanding diversity of Zr-based frameworks is inherently linked to the variable coordination geometry of Zr-oxo clusters and the conformational flexibility of the linker, both of which allow for different framework topologies based on the same linker–cluster combination. In addition, intrinsic structural disorder provides a largely unexplored handle to further expand the accessibility of novel metal–organic framework (MOF) structures that can be formed. In this work, we report the concomitant synthesis of three topologically different MOFs based on the same M(6)O(4)(OH)(4) clusters (M = Zr or Hf) and methane-tetrakis(p-biphenyl-carboxylate) (MTBC) linkers. Two novel structural models are presented based on single-crystal diffraction analysis, namely, cubic c-(4,12)MTBC-M(6) and trigonal tr-(4,12)MTBC-M(6), which comprise 12-coordinated clusters and 4-coordinated tetrahedral linkers. Notably, the cubic phase features a new architecture based on orientational cluster disorder, which is essential for its formation and has been analyzed by a combination of average structure refinements and diffuse scattering analysis from both powder and single-crystal X-ray diffraction data. The trigonal phase also features structure disorder, although involving both linkers and secondary building units. In both phases, remarkable geometrical distortion of the MTBC linkers illustrates how linker flexibility is also essential for their formation and expands the range of achievable topologies in Zr-based MOFs and its analogues.
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spelling pubmed-101765672023-05-13 Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder Koschnick, Charlotte Terban, Maxwell W. Frison, Ruggero Etter, Martin Böhm, Felix A. Proserpio, Davide M. Krause, Simon Dinnebier, Robert E. Canossa, Stefano Lotsch, Bettina V. J Am Chem Soc [Image: see text] The outstanding diversity of Zr-based frameworks is inherently linked to the variable coordination geometry of Zr-oxo clusters and the conformational flexibility of the linker, both of which allow for different framework topologies based on the same linker–cluster combination. In addition, intrinsic structural disorder provides a largely unexplored handle to further expand the accessibility of novel metal–organic framework (MOF) structures that can be formed. In this work, we report the concomitant synthesis of three topologically different MOFs based on the same M(6)O(4)(OH)(4) clusters (M = Zr or Hf) and methane-tetrakis(p-biphenyl-carboxylate) (MTBC) linkers. Two novel structural models are presented based on single-crystal diffraction analysis, namely, cubic c-(4,12)MTBC-M(6) and trigonal tr-(4,12)MTBC-M(6), which comprise 12-coordinated clusters and 4-coordinated tetrahedral linkers. Notably, the cubic phase features a new architecture based on orientational cluster disorder, which is essential for its formation and has been analyzed by a combination of average structure refinements and diffuse scattering analysis from both powder and single-crystal X-ray diffraction data. The trigonal phase also features structure disorder, although involving both linkers and secondary building units. In both phases, remarkable geometrical distortion of the MTBC linkers illustrates how linker flexibility is also essential for their formation and expands the range of achievable topologies in Zr-based MOFs and its analogues. American Chemical Society 2023-04-26 /pmc/articles/PMC10176567/ /pubmed/37125876 http://dx.doi.org/10.1021/jacs.2c13731 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Koschnick, Charlotte
Terban, Maxwell W.
Frison, Ruggero
Etter, Martin
Böhm, Felix A.
Proserpio, Davide M.
Krause, Simon
Dinnebier, Robert E.
Canossa, Stefano
Lotsch, Bettina V.
Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title_full Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title_fullStr Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title_full_unstemmed Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title_short Unlocking New Topologies in Zr-Based Metal–Organic Frameworks by Combining Linker Flexibility and Building Block Disorder
title_sort unlocking new topologies in zr-based metal–organic frameworks by combining linker flexibility and building block disorder
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10176567/
https://www.ncbi.nlm.nih.gov/pubmed/37125876
http://dx.doi.org/10.1021/jacs.2c13731
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